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Channel Estimation for Orthogonal Time Frequency Space (OTFS) Massive MIMO

机译:正交时频空间大规模MIMO的信道估计

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Orthogonal time frequency space (OTFS) modulation outperforms orthogonal frequency division multiplexing (OFDM) in high-mobility scenarios. One challenge forOTFSmassiveMIMO is downlink channel estimation due to the large number of base station antennas. In this paper, we propose a 3D-structured orthogonal matching pursuit algorithm based channel estimation technique to solve this problem. First, we show that the OTFS MIMO channel exhibits 3D-structured sparsity: normal sparsity along the delay dimension, block sparsity along the Doppler dimension, and burst sparsity along the angle dimension. Based on the 3D-structured channel sparsity, we then formulate the downlink channel estimation problem as a sparse signal recovery problem. Simulation results show that the proposed algorithm can achieve accurate channel state information with low pilot overhead.
机译:在高移动性场景中,正交时频空间(OTFS)调制的性能优于正交频分复用(OFDM)。 OTFS大规模MIMO的一大挑战是由于基站天线数量众多而导致的下行链路信道估计。本文提出了一种基于3D结构的正交匹配追踪算法的信道估计技术来解决这一问题。首先,我们显示OTFS MIMO信道具有3D结构的稀疏度:沿延迟维度的正常稀疏度,沿多普勒维度的块稀疏度以及沿角度维度的突发稀疏度。然后,基于3D结构的信道稀疏性,我们将下行链路信道估计问题公式化为稀疏信号恢复问题。仿真结果表明,该算法能够以较低的导频开销实现准确的信道状态信息。

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